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Published on: April 16, 2021
Requirement for NBS1 in the S phase checkpoint response to DNA methylation combined with PARP inhibition
Julie K Horton1, Donna F Stefanick, Jennifer Y Zeng
1Laboratory of Structural Biology, NIEHS, National Institutes of Health, Research Triangle Park, NC 27709, USA.
Abstract:
Treatment of PARP-1-expressing cells with the combination of a DNA methylating agent (MMS) and the PARP inhibitor 4-amino-1,8-naphthalimide (4-AN) leads to an ATR/Chk1-dependent S phase checkpoint and cell death by apoptosis. Activation of ATM/Chk2 is involved in sustaining the S phase checkpoint, and double strand break (DSB) accumulation was demonstrated. NBS1, part of the MRN complex that responds to DSBs, is known to modulate ATR- and ATM-dependent checkpoint responses to UV and IR, but a role in the response to PARP inhibition has not been addressed. Here we show that the S phase checkpoint observed 4-8h after MMS+4-AN treatment was absent in cells deficient in NBS1, but was present in NBS1-complemented (i.e., functionally wild-type) cells, indicating a critical role for NBS1 in this checkpoint response. NBS1 was phosphorylated in response to MMS+4-AN treatment, and this was partially ATR- and ATM-dependent, suggesting involvement of both upstream kinases. NBS1 expression had little effect on ATR-mediated phosphorylation of Chk1 and ATM-mediated phosphorylation of Chk2 in response to MMS+4-AN. Phosphorylation of SMC1 was also observed in response to MMS+4-AN treatment. In the absence of ATM and NBS1, phosphorylation of SMC1 was weak, especially at early times after MMS+4-AN treatment. In the absence of ATR activation, reduced SMC1 phosphorylation was seen over a 24h time course. These results suggested that both ATR and ATM phosphorylate SMC1 in response to MMS+4-AN and that this phosphorylation is enhanced by phospho-NBS1. The loss of the MMS+4-AN-induced S phase checkpoint in NBS1-deficient cells may be due to a reduced cellular level of the critical downstream effector, phospho-SMC1.
Insights
NBS1 protein is critical for the S phase checkpoint response to DNA damage induced by PARP inhibitors and methylating agents. Its absence disrupts this checkpoint, potentially by reducing phospho-SMC1 levels, leading to cell death.
Area of Science:
- Cellular biology
- DNA damage response
- Cancer research
Background:
- Poly(ADP-ribose) polymerase 1 (PARP-1) inhibitors combined with DNA methylating agents (MMS) induce S phase arrest and apoptosis.
- The MRN complex, including NBS1, responds to double-strand breaks (DSBs) and modulates ATR/ATM checkpoint signaling, but its role in PARP inhibition response is unclear.
Purpose of the Study:
- To investigate the role of NBS1 in the S phase checkpoint and DNA damage response following treatment with MMS and the PARP inhibitor 4-AN.
- To elucidate the involvement of NBS1 phosphorylation and its impact on downstream signaling pathways.
Main Methods:
- Cell-based assays using NBS1-deficient and complemented cells.
- Western blotting to detect protein phosphorylation (NBS1, Chk1, Chk2, SMC1).
- Treatment with MMS and 4-AN to induce DNA damage and PARP inhibition.
Main Results:
- The S phase checkpoint induced by MMS+4-AN was absent in NBS1-deficient cells, highlighting NBS1's critical role.
- NBS1 phosphorylation occurred in response to MMS+4-AN, dependent on ATR and ATM kinases.
- Both ATR and ATM phosphorylate SMC1, with enhanced phosphorylation observed in the presence of phospho-NBS1.
Conclusions:
- NBS1 is essential for the S phase checkpoint activation following combined MMS and PARP inhibition.
- The absence of NBS1 may lead to a reduced level of phospho-SMC1, impairing the checkpoint and potentially contributing to cell death.
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